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Axial Load for Singly Mounted Bearings When Fa by Fr Is Greater Than 1.14 Calculator

Formula Used:

\[ \text{Axial or thrust load acting on bearing} = \frac{\text{Equivalent dynamic load on singly bearing} - (0.35 \times \text{Radial load acting on bearing})}{0.57} \] \[ F_a = \frac{P_s - (0.35 \times F_r)}{0.57} \]

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1. What Is the Axial Load Calculation Formula?

The formula calculates the axial or thrust load acting on a bearing when the ratio of axial to radial load (Fa/Fr) is greater than 1.14. It is derived from bearing load dynamics and is used in mechanical engineering applications.

2. How Does the Calculator Work?

The calculator uses the formula:

\[ F_a = \frac{P_s - (0.35 \times F_r)}{0.57} \]

Where:

Explanation: This formula accounts for the combined effect of radial and dynamic loads on bearing performance when axial load dominates.

3. Importance of Axial Load Calculation

Details: Accurate axial load calculation is crucial for proper bearing selection, ensuring longevity and reliability of mechanical systems under specific load conditions.

4. Using the Calculator

Tips: Enter equivalent dynamic load and radial load values in Newtons. Both values must be positive numbers for valid calculation.

5. Frequently Asked Questions (FAQ)

Q1: When should this formula be used?
A: This formula applies specifically when the ratio of axial to radial load (Fa/Fr) is greater than 1.14 in singly mounted bearings.

Q2: What are typical applications for this calculation?
A: This calculation is used in mechanical engineering applications involving bearing selection and load analysis in machinery and equipment.

Q3: Are there limitations to this formula?
A: This formula is specifically valid when Fa/Fr > 1.14. Different formulas apply for other load ratio conditions.

Q4: How accurate is this calculation?
A: The calculation provides engineering accuracy for bearing load analysis when used within its specified conditions and valid input ranges.

Q5: What units should be used for input values?
A: All input values should be in Newtons (N) for consistent and accurate results.

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